Photoaffinity probe-based antimalarial target identification of artemisinin in the intraerythrocytic developmental cycle of Plasmodium falciparum

IF 23.7 Q1 MICROBIOLOGY iMeta Pub Date : 2024-02-19 DOI:10.1002/imt2.176
Peng Gao, Jianyou Wang, Chong Qiu, Huimin Zhang, Chen Wang, Ying Zhang, Peng Sun, Honglin Chen, Yin Kwan Wong, Jiayun Chen, Junzhe Zhang, Huan Tang, Qiaoli Shi, Yongping Zhu, Shengnan Shen, Guang Han, Chengchao Xu, Lingyun Dai, Jigang Wang
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Abstract

Malaria continues to pose a serious global health threat, and artemisinin remains the core drug for global malaria control. However, the situation of malaria resistance has become increasingly severe due to the emergence and spread of artemisinin resistance. In recent years, significant progress has been made in understanding the mechanism of action (MoA) of artemisinin. Prior research on the MoA of artemisinin mainly focused on covalently bound targets that are alkylated by artemisinin-free radicals. However, less attention has been given to the reversible noncovalent binding targets, and there is a paucity of information regarding artemisinin targets at different life cycle stages of the parasite. In this study, we identified the protein targets of artemisinin at different stages of the parasite's intraerythrocytic developmental cycle using a photoaffinity probe. Our findings demonstrate that artemisinin interacts with parasite proteins in vivo through both covalent and noncovalent modes. Extensive mechanistic studies were then conducted by integrating target validation, phenotypic studies, and untargeted metabolomics. The results suggest that protein synthesis, glycolysis, and oxidative homeostasis are critically involved in the antimalarial activities of artemisinin. In summary, this study provides fresh insights into the mechanisms underlying artemisinin's antimalarial effects and its protein targets.

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基于光亲和探针的青蒿素在恶性疟原虫红细胞内发育周期中的抗疟靶标鉴定
疟疾继续对全球健康构成严重威胁,青蒿素仍然是全球疟疾控制的核心药物。然而,由于青蒿素抗药性的出现和蔓延,疟疾抗药性形势日益严峻。近年来,人们在了解青蒿素的作用机制(MoA)方面取得了重大进展。以前对青蒿素作用机制的研究主要集中在被青蒿素自由基烷基化的共价结合靶点上。然而,人们较少关注可逆的非共价结合靶标,而且有关寄生虫不同生命周期阶段的青蒿素靶标的信息也很少。在这项研究中,我们利用光亲和探针确定了青蒿素在寄生虫红细胞内发育周期不同阶段的蛋白质靶标。我们的研究结果表明,青蒿素在体内通过共价和非共价两种方式与寄生虫蛋白质相互作用。随后,通过整合目标验证、表型研究和非目标代谢组学,我们进行了广泛的机理研究。研究结果表明,青蒿素的抗疟活性与蛋白质合成、糖酵解和氧化平衡密切相关。总之,这项研究为青蒿素的抗疟作用及其蛋白质靶点的机制提供了新的见解。
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